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Increased Expression of MicroRNA 551a by c-Fos Reduces Focal Adhesion Kinase Levels and Blocks Tumorigenesis
Anuj1,2, Lakshmi Arivazhagan1, Ganesh Venkatraman3
1Department of Biotechnology, Indian Institute of Technology Madras, Chennai, India.
Abstract:
Breast cancer is a recurrent type of cancer among women worldwide. Despite remarkable progress in the prevention, detection, and treatment of breast cancer, it still remains a major chronic problem worldwide and poses significant challenges, like metastasis to distant organs, demanding the need for novel biomarkers and therapeutic targets. Focal adhesion kinase (FAK), a member of the protein tyrosine kinases, has been shown to be expressed in high levels in breast tumors. Of late, FAK has emerged as an impending curative target in breast carcinoma, with few of the small molecular inhibitors reaching the clinical trial stage. In the current study, we established that microRNA 551a (miR-551a) precisely regulates FAK by binding to the complementary sequences in the 3' untranslated region (UTR) of mRNAs of FAK and inhibits its expression in breast carcinoma cell lines. Further, results from human breast carcinoma samples illustrated that miR-551a levels were substantially downregulated in tumor samples, with a concurrent rise in the expression of FAK. Functional experimental studies using miR-551a-overexpressing breast cancer cells and nude mouse xenograft models revealed the tumor suppressor role of miR-551a. We also found that miR-551a expression decreased the invasion and migratory ability of breast carcinoma cells by inhibiting MMP-9 activity. Regulation studies performed utilizing promoter luciferase assays, chromatin immunoprecipitation (ChIP), and electrophoretic mobility shift assay (EMSA) revealed that c-Fos binds to the miR-551a promoter and activates it. Further, we observed a considerable increase in the amount of miR-551a levels upon c-Fos overexpression. All of these results showed that miR-551a can be of clinical relevance in understanding the regulation of FAK in breast tumorigenesis.
Insights
MicroRNA 551a (miR-551a) acts as a tumor suppressor in breast cancer by downregulating focal adhesion kinase (FAK). This discovery offers potential new therapeutic targets for breast carcinoma treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Breast cancer remains a significant global health challenge, with metastasis posing a major obstacle.
- Focal adhesion kinase (FAK) is upregulated in breast tumors and is a potential therapeutic target.
- Novel biomarkers and therapeutic strategies are needed to combat breast cancer effectively.
Purpose of the Study:
- To investigate the role of microRNA 551a (miR-551a) in regulating focal adhesion kinase (FAK) expression in breast cancer.
- To elucidate the functional significance of the miR-551a/FAK axis in breast tumorigenesis and metastasis.
- To identify upstream regulators of miR-551a in the context of breast cancer.
Main Methods:
- In vitro studies using breast carcinoma cell lines to assess miR-551a's regulation of FAK.
- Analysis of human breast tumor samples to correlate miR-551a and FAK expression levels.
- In vivo experiments using nude mouse xenograft models to evaluate miR-551a's tumor suppressor activity.
- Biochemical assays including promoter luciferase assays, ChIP, and EMSA to determine c-Fos's role in regulating miR-551a.
Main Results:
- miR-551a directly targets and inhibits FAK expression in breast cancer cells.
- miR-551a is downregulated in human breast tumors, inversely correlating with FAK expression.
- Overexpression of miR-551a suppressed tumor growth, invasion, and migration in vitro and in vivo, partly via inhibition of MMP-9.
- c-Fos was identified as a positive regulator that binds to and activates the miR-551a promoter.
Conclusions:
- miR-551a functions as a tumor suppressor in breast cancer by inhibiting FAK.
- The miR-551a/FAK pathway represents a potential therapeutic target for breast cancer.
- c-Fos-mediated activation of miR-551a offers insights into breast cancer regulation.
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